Topological Frustration can modify the nature of a Quantum Phase Transition
arXiv:2101.08807 · doi:10.21468/SciPostPhys.12.2.075
Abstract
Ginzburg-Landau theory of continuous phase transitions implicitly assumes that microscopic changes are negligible in determining the thermodynamic properties of the system. In this work we provide an example that clearly contrasts with this assumption. We show that topological frustration can change the nature of a second order quantum phase transition separating two different ordered phases. Even more remarkably, frustration is triggered simply by a suitable choice of boundary conditions in a 1D chain. While with every other BC each of two phases is characterized by its own local order parameter, with frustration no local order can survive. We construct string order parameters to distinguish the two phases, but, having proved that topological frustration is capable of altering the nature of a system's phase transition, our results pose a clear challenge to the current understanding of phase transitions in complex quantum systems.
10 pages, 6 figures, including Supplementary Material. Discussion on the effects of a defect added in appendices in V2
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- Frustrating quantum batteries
- Complexity of frustration: a new source of non-local non-stabilizerness
- Odd thermodynamic limit for the Loschmidt echo
- Long-range entanglement and topological excitations
- Towards a phase diagram of the topologically frustrated XY chain
- Random unitaries, Robustness, and Complexity of Entanglement
- Few-body precursors of topological frustration
- Finite time path field theory perturbative methods for local quantum spin chain quenches